β-carotene content in maize grain and the allelic state of the lycopene-ε-cyclase and β-carotene hydroxylase 1 genes in maize genotypes of Ukrainian breeding

  • K. V. Denysiuk State Enterprise Institute of Grain Crops of the National Academy of Agrarian Sciences of Ukraine, 14 Volodymyr Vernadskyi St., Dnipro, Ukraine, 49009 https://orcid.org/0000-0003-1871-9585
  • V. Yu. Cherchel State Enterprise Institute of Grain Crops of the National Academy of Agrarian Sciences of Ukraine, 14 Volodymyr Vernadskyi St., Dnipro, Ukraine, 49009; The National Academy of Agrarian Sciences of Ukraine, 9, Mykhailo Omelianovych-Pavlenko Str., Kyiv, 01010, Ukraine https://orcid.org/0000-0002-0429-4961
  • N. A. Bodenko State Enterprise Institute of Grain Crops of the National Academy of Agrarian Sciences of Ukraine, 14 Volodymyr Vernadskyi St., Dnipro, Ukraine, 49009 https://orcid.org/0000-0002-4370-8477
  • E. M. Fedorenko State Enterprise Institute of Grain Crops of the National Academy of Agrarian Sciences of Ukraine, 14 Volodymyr Vernadskyi St., Dnipro, Ukraine, 49009 https://orcid.org/0000-0002-5881-4440
  • B. V. Dziubetskyi State Enterprise Institute of Grain Crops of the National Academy of Agrarian Sciences of Ukraine, 14 Volodymyr Vernadskyi St., Dnipro, Ukraine, 49009; The National Academy of Agrarian Sciences of Ukraine, 9, Mykhailo Omelianovych-Pavlenko Str., Kyiv, 01010, Ukraine https://orcid.org/0000-0003-2955-232X
  • D. V. Kozariichuk Bukovyna State Agricultural Experimental Station of Institute of Agriculture of Carpathian Region of National Academy of Agrarian Sciences of Ukraine, 21 Bohdan Kryzhanivskyi St., Chernivtsi, Ukraine, 48000 https://orcid.org/0009-0007-5257-1963

Анотація

Aim. To identify potential donors of increased β-carotene content in grain and favorable alleles of the lycopene-ε-cyclase (lycε) and β-carotene hydroxylase 1 (crtRB1) genes among maize genotypes of Ukrainian breeding by assessing the β-carotene content in grain and analyzing the associations between the β-carotene content and the allelic state of carotenogenesis genes. Methods. Spectrophotometric analysis, polymerase chain reaction, statistical methods. The content of total carotenoids by β-carotene in corn kernels was analyzed twice: at the time of harvest (September 2024) and after nine months of storage (June 2025). Results. Significant variability in β-carotene content among the studied genotypes was established. At the time of grain harvesting, this indicator was on average 4.67 mg/kg (2.70–7.14 mg/kg), and after nine months of storage, it decreased on average by 46.68% and amounted to 2.49 mg/kg (1.98–3.71 mg/kg). The degree of loss varied considerably depending on the genotype (12.59–62.18%). The two-way ANOVA analysis showed that the greatest contribution to the variation of the «β-carotene content» trait in grain was the duration of storage (51.7%), while the contribution of the genotype was 30.7%, and their interaction — 15.2%. According to the lycε-SNP216 marker of the lycopene-ε-cyclase gene, the genotypes with the G allele (61.1%), the T allele (33.3%) and one heterozygous G/T genotype (5.6%) were identified, while according to the crtRB1-3′TE marker of the β-carotene hydroxylase 1 gene, unfavorable (296 and 296+875 bp) alleles (94.4%) prevailed. A tendency towards an increase in the β-carotene content was found in genotypes with the favorable G allele of the lcyε gene (4.79±0.43 mg/kg) compared to genotypes with the T allele (4.13±0.55 mg/kg). The genotype Kros256S with the heterozygous state of crtRB1 (296+543 bp) was characterized by an increased post-storage content of β-carotene (3.71 mg/kg). At the same time, the detection of albeit limited number of genotypes with a favorable (543 bp) allele provides an opportunity to conduct a full-fledged statistical analysis of the influence of favorable alleles of this gene on the post-storage content of β-carotene in future. It was found that the most promising potential donors for maize breeding for an increased content of provitamin A are the genotypes Kros268S and DK3172 ZM, which combined a high content of β-carotene with the presence of a favorable allele G of the lycε gene, as well as Kros256S, which was characterized by a high content of β-carotene both at the time of grain harvest and after nine months of storage and contained the favorable allele G of the lycε gene and the allele 543 bp of crtRB1 gene. Conclusions. For corn genotypes of Ukrainian selection, the content of β-carotene in the grain at the time of harvesting and after nine months of storage was comprehensively assessed in combination with the determination of the allelic status of the lcyε and crtRB1 genes. The features of the manifestation of the allelic state of the lcyε and crtRB1 genes regarding the variability of the β-carotene content in the grain and its preservation were established. Potential donors of increased β-carotene content in grain and favorable alleles of carotenogenesis genes lycε and crtRB1 were identified among the maize genotypes of Ukrainian breeding. The genotypic variability of β-carotene content in grain was assessed at the time of grain harvest and after nine months of storage. Genotypes carrying the favorable allele G of the lycε gene were characterized by a tendency to increased β-carotene content in grain, while the assessment of the influence of the favorable allele 543 bp of the crtRB1 gene requires an expansion of the sampling of studied genotypes. Genotypes Kros268S, DK3172 ZM and Kros256S may be considered to be the most promising potential donors for maize breeding for increased β-carotene content in grain. The results obtained can be used for selection of starting material and marker-assisted selection of maize for increased β-carotene content in grain.

Посилання

Babu R, Rojas NP, Gao S, et al (2013) Validation of the effects of molecular marker polymorphisms in LcyE and CrtRB1 on provitamin A concentrations for 26 tropical maize populations. Theor Appl Genet 126(2):389–99. https://doi.org/10.1007/s00122-012-1987-3

Băcilă I, Haş V, Řuteu D, et al (2022) Screening of the Romanian maize (Zea mays L.) germplasm for crtRB1 and lcyE alleles enhancing the provitamin A concentration in endosperm. Notulae Botanicae Horti Agrobotanici Cluj-Napoca 50(3):12621. https://doi.org/10.15835/nbha50312621

Bhatt V, Muthusamy V, Panda KK, et al (2023) Expression dynamics of lpa1 gene and accumulation pattern of phytate in maize genotypes possessing opaque2 and crtRB1 genes at different stages of kernel development. Plants 12(9):1745. https://doi.org/10.3390/plants12091745

Chandrasekharan N, Ramanathan N, Pukalenthy B, et al (2022) Development of β-carotene, lysine, and tryptophan-rich maize (Zea mays) inbreds through marker-assisted gene pyramiding. Sci Rep 12:8551. https://doi.org/10.1038/s41598-022-11585-y

Chauhan HS, Zunjare RU, Rashmi T, et al (2025) Enrichment of vitamin A and vitamin E in sweet corn kernels through genomics-assisted introgression of mutant version of crtRB1 and vte4 genes. Appl Biochem Biotechnol 197(3):1889–905. https://doi.org/10.1007/s12010-024-05104-0

Denysiuk KV, Satarova TM, Semenova VV, et al (2024) SNP analysis of Ukrainian maize inbreds with alternative state of molecular carotenogenesis marker crtRB1-3’TE. Agricultural Science and Practice 11(1):77–85. https://doi.org/10.15407/agrisp11.01.077

Ewens WJ, Brumberg K (2023) Introductory statistics for data analysis. Springer Cham, p. 273. https://doi.org/10.1007/978-3-031-28189-1

Gunjević V, Musa MM, Zurak D, et al (2024) Carotenoid degradation rate in milled grain of dent maize hybrids and its relationship with the grain physicochemical properties. Food Research International 177:113909. https://doi.org/10.1016/j.foodres.2023.113909

Harjes CE, Rocheford TR, Bai L, et al (2008) Natural genetic variation in lycopene epsilon cyclase tapped for maize biofortification. Science 319(5861):330–3. https://doi.org/10.1126/science.1150255

Hossain F, Jaiswal SK, Muthusamy V, et al (2023) Enhancement of nutritional quality in maize kernel through marker-assisted breeding for vte4, crtRB1, and opaque2 genes. J Appl Genet 64(3):431–43. https://doi.org/10.1007/s13353-023-00768-6

Kljak K, Zurak D, Svečnjak Z, Grbeša D (2024) Relationship of physical properties and macronutrient composition with carotenoid profile in maize hybrids. Agriculture 14(3):384. https://doi.org/10.3390/agriculture14030384

Mehta BK, Chauhan HS, Basu S, et al (2024) Mutant crtRB1 gene negates the unfavourable effects of opaque2 gene on germination and seed vigour among shrunken2-based biofortified sweet corn genotypes. Funct Plant Biol 51:FP23179. https://doi.org/10.1071/FP23179

Menkir A, Dieng I, Meseka S, et al (2025) Concurrent enhancement of provitamin A and yield in tropical maize hybrids. Front Plant Sci 16:1611495. https://doi.org/10.3389/fpls.2025.1611495

Mng’ong’o ME, Msungu SD (2024) Golden harvest: Nitrogen’s impact on maize carotenoids. Food and Humanity 3:100371. https://doi.org/10.1016/j.foohum.2024.100371

Munkhuwa V, Masamba K, Kasapila W (2023) Beta-carotene retention and consumer acceptability of selected products made from two provitamin-A maize varieties. Int J Food Sci 2023:5575291. https://doi.org/10.1155/2023/5575291

Muthusamy V, Hossain F, Thirunavukkarasu N, et al (2015) Development of β-carotene rich maize hybrids through marker-assisted introgression of β-carotene hydroxylase allele. PLoS One 10(3):e0122130. https://doi.org/10.1371/journal.pone.0122130

Rodriguez-Amaya DB, Kimura M (2004) Handbook for carotenoid analysis (2 ed.). HarvestPlus, Washington, pp 30–7.

Saenz E, Borrás L, Gerde JA (2025) Differential impact of storage temperature and endosperm hardness on carotenoid retention in maize whole grain and flour. Journal of Cereal Science 126:104294. https://doi.org/10.1016/j.jcs.2025.104294

Sagare DB, Shetti P, Reddy SS, et al (2015) Identification of β-carotene rich maize inbreds using PCR-based assay for crtRB1-3’TE allele. IJSN 6(3):441–3.

Sayadi Maazou A-R, Gedil M, Adetimirin VO, et al (2021) Comparative assessment of effectiveness of alternative genotyping assays for characterizing carotenoids accumulation in tropical maize inbred lines. Agronomy 11(10):2022. https://doi.org/10.3390/agronomy11102022

Šimić D, Galić V, Jambrović A, et al (2023) Genetic variability in carotenoid contents in a panel of genebank accessions of temperate maize from Southeast Europe. Plants 12(19):3453. https://doi.org/10.3390/plants12193453

Vallabhaneni R, Gallagher CE, Licciardello N, et al (2009) Metabolite sorting of a germplasm collection reveals the hydroxylase3 locus as a new target for maize provitamin A biofortification. Plant Physiol 151:1635–45. https://doi.org/10.1104/pp.109.145177

Yan J, Kandianis CB, Harjes CE, et al (2010) Rare genetic variation at Zea mays crtRB1 increases beta-carotene in maize grain. Nat Genet 42(4):322–7. https://doi.org/10.1038/ng.551

Опубліковано
2026-08-28
Як цитувати
Denysiuk, K. V., Cherchel, V. Y., Bodenko, N. A., Fedorenko, E. M., Dziubetskyi, B. V., & Kozariichuk, D. V. (2026). β-carotene content in maize grain and the allelic state of the lycopene-ε-cyclase and β-carotene hydroxylase 1 genes in maize genotypes of Ukrainian breeding. Agricultural Science and Practice, 13(2), 51-62. https://doi.org/10.15407/agrisp13.02.051

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